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BioInspireSensing Exhibition Film 2024
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Highly Durable Nanoporous Cu2−xS Films for Efficient Hydrogen Evolution Electrocatalysis under Mild pH Conditions
<div># Dataset of “ Highly Durable Nanoporous Cu2-xS Films for Efficient Hydrogen Evolution Electrocatysis under Mild pH Conditions”</div> <div> </div> <div>---</div> <div> </div> <div>## GENERAL INFORMATION</div> <div>----------------------</div> <div> </div> <div>1. Dataset title: “ Highly Durable Nanoporous Cu2-xS Films for Efficient Hydrogen Evolution Electrocatysis under Mild pH Conditions”</div> <div> </div> <div>2. Authorship: </div> <div> Name: Roser Fernández-Climent </div> <div> Institution: Institute of Advanced Materials (INAM), Universitat Jaume I, 12006 Castelló, Spain</div> <div> ORCID: 0009-0003-4184-5579</div> <div> </div> <div> Name: Jesús Redondo</div> <div> Institution: Department of Polymers and Advanced Materials, Centro de Física de Materiales, University of the Basque Country UPV/EHU, 20018 San Sebastián, Spain; Department of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, 180 00 Prague 8, Czech Republic</div> <div> </div> <div> </div> <div> Name: Miguel Garcia-Tecedor</div> <div> Institution: Institute of Advanced Materials (INAM), Universitat Jaume I, 12006 Castelló, Spain; Photoactivated Processes Unit, IMDEA Energy Institute, Parque Tecnológico de Móstoles, 28935 Móstoles, Madrid, Spain;</div> <div> ORCID: 0000-0002-9664-4665</div> <div> </div> <div> Name: Maria Chiara Spadaro</div> <div> Institution: Catalan Institute of Nanoscience and Nanotechnology (ICN2) and BIST Campus UAB, Bellaterra 08193 Barcelona, Spain;</div> <div> ORCID: 0000-0002-6540-0377</div> <div> </div> <div> Name: Junan Li</div> <div> Institution: Department of Chemistry, Université de Montréal, Montréal, QC H2V 0B3, Canada</div> <div> ORCID: 0000-0002-3660-1049</div> <div> </div> <div> Name: Daniel Chartrand</div> <div> Institution: Department of Chemistry, Université de Montréal, Montréal, QC H2V 0B3, Canada</div> <div> </div> <div> </div> <div> Name: Frederik Schiller</div> <div> Institution: Centro de Física de Materiales and Material Physics Center CSIC/UPV-EHU, 20018 San Sebastián, Spain; Donostia International Physics Center, 20018 San Sebastián, Spain</div> <div> ORCID: 0000-0003-1727-3542</div> <div> </div> <div> Name: Jhon Pazos</div> <div> Institution: Research Cluster on Converging Sciences and Technologies (NBIC), Departamento de Ingeniería Electrónica, Universidad Central, Bogotá 110311, Colombia</div> <div> ORCID: 0000-0001-7570-9047</div> <div> </div> <div> Name: Mikel F. Hurtado</div> <div> Institution: Research Cluster on Converging Sciences and Technologies (NBIC), Departamento de Ingeniería Electrónica, Universidad Central, Bogotá 110311, Colombia; Materials Chemistry Area, Civil Engineering Department, Corporación Universitaria Minuto de Dios, Calle 80, Main Sede Bogotá, Colombia. − Nanotechnology Applications Area, Environmental Engineering Department, Universidad Militar Nueva Granada, Zipaquirá 110311, Colombia</div> <div> </div> <div> </div> <div> Name: Victor de la Peña O’Shea</div> <div> Institution: Photoactivated Processes Unit, IMDEA Energy Institute, Parque Tecnológico de Móstoles, 28935 Móstoles, Madrid, Spain;</div> <div> ORCID: 0000-0001-5762-4787</div> <div> </div> <div> Name: Nikolay Kornienko</div> <div> Institution: Department of Chemistry, Université de Montréal, Montréal, QC H2V 0B3, Canada;</div> <div> ORCID: 0000-0001-7193-2428</div> <div> </div> <div> Name: Jordi Albiol</div> <div> Institution: Catalan Institute of Nanoscience and Nanotechnology (ICN2) and BIST Campus UAB, Bellaterra 08193 Barcelona, Spain; ICREA, 08010 Barcelona, Catalonia, Spain</div> <div> ORCID: 0000-0002-0695-1726</div> <div> </div> <div> Name: Sara Barja</div> <div> Institution: Department of Polymers and Advanced Materials, Centro de Física de Materiales, University of the Basque Country UPV/EHU, 20018 San Sebastián, Spain; Donostia International Physics Center, 20018 San Sebastián, Spain; IKERBASQUE, Basque Foundation for Science, 48009 Bilbao, Spain;</div> <div> Email: sara.barja@ehu.eus</div> <div> </div> <div> </div> <div> Name: Camilo A. Mesa</div> <div> Institution: Institute of Advanced Materials (INAM), Universitat Jaume I, 12006 Castelló, Spain; Research Cluster on Converging Sciences and Technologies (NBIC), Departamento de Ingeniería Electrónica, Universidad Central, Bogotá, 110311, Colombia;</div> <div> Email: <cmesa@uji.es> </div> <div> ORCID: 0000-0002-8450-2563</div> <div> </div> <div> </div> <div> Name: Sixto Giménez</div> <div> Institution: Institute of Advanced Materials (INAM), Universitat Jaume I, 12006 Castelló, Spain</div> <div> Email: <sjulia@uji.es> </div> <div> ORCID: 0000-0002-4522-3174</div> <div> </div> <div> </div> <div> </div> <div>## FILE DESCRIPTION</div> <div>—————————</div> <div>### Figure 2</div> <div>-Fig2e.txt : XPS analysis for Cu LMM.</div> <div>-Fig2f.txt : XPS analysis for S 2p spectra of the Cu2−xS electrodes. Reference spectra measured on a metallic Cu substrate are shown in red dotted lines.</div> <div> </div> <div>### Figure 3</div> <div>-Fig3a.txt : Chronoamperometric measurement at −1 V vs RHE of the Cu2−xS catalyst for 28 days of continuous operation. The dashed gray line represents the quasi-linear increase in the catalytic current density as a function of operation time. Steady-state currents at −1.0 V vs RHE normalized by the electrochemical surface area (ECSA) are shown as light blue empty dots.</div> <div>-Fig3b.txt : Linear sweep voltammograms (LSV), measured at 20 mV s−1, of the same Cu2−xS electrode as a function of operation time between day 1, i.e., freshly synthesized catalyst (darker blue), and after 28 days (lighter blue) of continuous operation. Inset: zoom between the first and the last LSV to compare the overpotential at −10 mA cm−2 (dashed red line).</div> <div>-Fig3c.txt : Cathodic current densities (|J|) measured at −1.0 V vs RHE,from panel (b) (blue filled dots) compared to the ECSA increase ratio (empty green dots, RECSA) calculated using eq 1. Note that the time is in the log scale.</div> <div>-Fig3d.txt : Series (RS) and charge transfer (RCT) resistances and capacitance, RS (gray dots), RCT (violet dots), and C (green dots) at the 28th day of measurement. The gray area denotes the potential region where RCT < RS.</div> <div>-Fig3f.txt : Tafel slope values as a function of operation time obtained from panel.</div> <div> </div> <div>###Figure 4</div> <div>-Fig4a.txt : Differential optical density spectra of the Cu2−xS (light and dark blue) and reference Cu foil (light and dark red) electrodes as a function of potential. For reference, Cu2−xS differential spectra were measured also in 0.1 M TBAP in acetonitrile.</div> <div>-Fig4b.txt : Operando XRD diffractograms at different potentials from OCP to −1.0 V vs RHE.</div> <div>-Fig4bInset.txt : Inset:LSV.</div> <div>-Fig4c.txt : Reference XPS measurements for (c) Cu LMM and (d) S 2p spectra. </div> <div>-Fig4d.txt : Post electrochemical XPS measurements for (c) Cu LMM and (d) S 2p spectra.</div> <div> </div> <div>### Figure S2</div> <div>-FigS2f.txt : UV-Vis-NIR absorption spectrum of the pristine Cu2-xS films, extracted from diffuse reflectance measurements. The NIR band centered ~1600 nm is tentatively assigned to localized surface plasmon resonance caused by the Cu deficiency as observed in other Cu2-xS electrodes</div> <div> </div> <div>### Figure S4</div> <div>-FigS4a.txt : XPS analysis of the Cu2-xS as-synthetized electrodes before (black) and after (red) Ar+ cleaning. Cu 2p spectra.</div> <div>-FigS4b.txt : XPS analysis of the Cu2-xS as-synthetized electrodes before (black) and after (red) Ar+ cleaning. Normalized Cu 2p spectra.</div> <div>-FigS4c.txt : XPS analysis of the Cu2-xS as-synthetized electrodes before (black) and after (red) Ar+ cleaning. Cu Auger spectra.</div> <div>-FigS4d.txt : XPS analysis of the Cu2-xS as-synthetized electrodes before (black) and after (red) Ar+ cleaning. O 1s spectra.</div> <div>-FigS4e.txt : XPS analysis of the Cu2-xS as-synthetized electrodes before (black) and after (red) Ar+ cleaning. C 1s spectra.</div> <div>-FigS4f.txt : XPS analysis of the Cu2-xS as-synthetized electrodes before (black) and after (red) Ar+ cleaning. S 2p spectra.</div> <div> </div> <div>### Figure S9</div> <div>-FigS9.txt : Real part of the complex capacitance measured as a function of frequency (Bode plots) of our Cu2-xS electrodes a function of operation time measured at -0.1 V vs RHE (non-faradaic region). The Cdl values were taken at ~5 Hz.</div> <div> </div> <div>### Figure S10</div> <div>-FigS10.txt : Normalized linear sweep voltammograms (LSV) by the rECSA values from Figure 3c of the same Cu2-xS electrode as a function of operation time between the day 1, i.e., freshly synthesized catalyst (darker blue) and after 28 days (lighter blue) of continuous operation. LSVs from Figure 3b are displayed in the inset for reference. The LSV were measured at 20 mV s-1 in 0.1 M KHCO3.</div> <div>-FigS10Inset.txt : Linear sweep voltammograms (LSV), measured at 20 mV s−1, of the same Cu2−xS electrode as a function of operation time between day 1, i.e., freshly synthesized catalyst (darker blue), and after 28 days (lighter blue) of continuous operation.</div> <div> </div> <div>### Figure S12</div> <div>-FigS12.txt : Rs values of the Cu2-xS catalysts extracted from electrochemical impedance spectroscopy (EIS) analysis as a function of operation time (indicated by the grey arrow),inset: Rs values of the Cu2S catalysts measured as a function of concentration of KHCO3 electrolyte. A 20-fold increase of the KHCO3 concentration results in a decrease of ~1 order of magnitude in the Rs, thus, the observed ohmic drop decrease can be attributed to an increase in ionic concentration in the electrolyte. Rs can aid understanding the difference between the 8-fold increase in J, compared to the 6.5-fold increase in ECSA shown in Figure 3c. However, this is out of the scope if this paper and is being subject of further analysis.</div> <div> </div> <div>### Figure S13</div> <div>-FigS13a.txt : Charge transfer resistances (Rct)</div> <div>-FigS13b.txt : Capacitances values as a function of operation time from the Cu2-xS electrocatalysts.</div> <div> </div> <div>### Figure S14</div> <div>-FigS14.txt : Steady-state LSVs of the Cu2-xS electrode as a function of operation time between the day 1, i.e., freshly synthesized catalyst (darker blue) and after 28 days (lighter blue) of continuous operation (indicated by the grey arrow). Every data point corresponds to the average current of the last 60 s of a 5-minute chronoamperometric measurement at every measured potential.</div> <div> </div> <div>### Figure S16</div> <div>-FigS16a.txt : Differential spectra of the reference Cu foil as a function of applied potential.</div> <div>-FigS16b.txt : Differential spectra of the Cu2-xS and reference electrodes as a function of applied potential.</div> <div> </div> <div>### Figure S17</div> <div>-FigS17a.txt : XPS analysis of the Cu2-xS electrodes after the electrochemical measurements. Cu Auger spectra when transferred under air (black) and under N2 atmospheres (red).</div> <div>-FigS17b.txt : XPS analysis of the Cu2-xS electrodes after the electrochemical measurements. C 1s spectra when transferred under air (black) and under N2 atmospheres (red).</div> <div>-FigS17c.txt : XPS analysis of the Cu2-xS electrodes after the electrochemical measurements. O 1s spectra when transferred under air (black) and under N2 atmospheres (red).</div> <div>-FigS17d.txt : XPS analysis of the Cu2-xS electrodes after the electrochemical measurements. 2p spectra when transferred under air (black) and under N2 atmospheres (red).</div> <div> </div> <div>### Figure S18</div> <div>-FigS18a.txt : XPS analysis of the Cu2-xS electrodes after the electrochemical measurements with and without washing with water.</div> <div>-FigS18b.txt : XPS analysis of the Cu2-xS electrodes after the electrochemical measurements with and without washing with water.</div> <div>-FigS18c.txt : XPS analysis of the Cu2-xS electrodes after the electrochemical measurements with and without washing with water.</div>
Data from the paper "Porphyrin central metal ion driven self-assembling in heterogeneous ZnTPP – CoTPP films grown on Fe(001)-p(1 × 1)O"
Open the record for dataset details and reuse information.
data and codes for paper "Deriving mobility-lifetime products in halide perovskite films from spectrally- and time-resolved photoluminescence"
<p>These are the data and Matlab codes used in the paper "Deriving mobility-lifetime products in halide perovskite films from spectrally- and time-resolved photoluminescence".</p>
Engineering of intrinsic chiral torques in magnetic thin films based on the Dzyaloshinskii-Moriya interaction
<p>Open data for <strong>Engineering of intrinsic chiral torques in magnetic thin films based on the Dzyaloshinskii-Moriya interaction</strong></p>
BeMAGIC_Growth of heterostructured (bilayered) multiferroic films
<p>BeMAGIC ITN (GA861145)_Growth of heterostructured (bilayered) multiferroic films. Results from UAB, AALTO and TTS</p>
Cation non-stoichiometry in Fe:SrTiO3 thin films and its effect on the electrical conductivity
<p>This dataset contains raw data and figures used in the publication: <a href="https://doi.org/10.1039/D1NA00358E">https://doi.org/10.1039/D1NA00358E</a></p>
RAW data for Correlation analysis of vibration modes in physical vapour deposited Bi2Se3 thin films probed by the Raman mapping technique
<p>Raw data for the "Correlation analysis of vibration modes in physical vapour deposited Bi2Se3 thin films probed by the Raman mapping technique" paper.</p>
Building a Ngalawa Double Outrigger Logboat in Bagamoyo, Tanzania: A Craftsman at his Work. 3D Model and Documentary Film Files.
<p>The 3D model and documentary film detailing the building of the <em>Bahari Yetu, Urithi Wetu</em> <em>ngalawa</em> accompany an article on building a Ngalawa, a double outrigger logboat. The article documents master logboat-builder Alalae Mohamed’s construction of a <em>ngalawa</em> fishing vessel in Bagamoyo, Tanzania, in 2019. The <em>ngalawa</em> is an extended logboat with double outrigger and lateen sail: used by low-income, artisanal fishers. It is the most common marine vessel type of the East African coast. This article follows the construction process from Alalae’s selection and the felling of the tree(s) to the launching of the vessel. It outlines the tools and materials used, details the sequence he followed, and presents his choices and considerations made along the way. It is accompanied by a documentary film recording the construction process, a 3D digital model of the vessel and detailed construction drawings. </p>
Prediction and realisation of high mobility and degenerate p-type conductivity in CaCuP thin films Dataset
<p>Experimental and computational datasets for this publication, including README files. To unzip, in the command line paste the following command:</p> <blockquote> <p>tar -xzvf cacup_data_repository_v2.tar.gz</p> </blockquote> <p>And repeat the command:</p> <blockquote> <p>tar -xzvf <file.tar.gz></p> </blockquote> <p>for each necessary tar file.</p> <p>For any issues with accessibility, please email joe.willis.15@ucl.ac.uk.</p>
High-Throughput Screening of Tribological Properties of Monolayer Films using Molecular Dynamics and Machine Learning: Supplemental Repository
<p>Supplemental repository for the "High-Throughput Screening of Tribological Properties of Monolayer Films using Molecular Dynamics and Machine Learning" article. Contains calculated tribological properties of dual-monolayer systems from Molecular Dynamics (MD) simulation and Machine Learning (ML).</p>
Relationship Between Crystallization, Mechanical and Gas Barrier Properties of Poly(ethylene furanoate) (PEF) in Multinanolayered PLA-PEF and PET-PEF Films
<p>Alain Guinault, from CNAM, presented at the 24<sup>th</sup> International Conference on Material Forming (ESAFORM 2021) the results obtained and published in the framework of the project MyPack “Relationship Between Crystallization, Mechanical and Gas Barrier Properties of Poly(ethylene furanoate) (PEF) in Multinanolayered PLA-PEF and PET-PEF Films.”</p>
Polyamide film modified with Ag NPs
<p>The data set summarized the SEM files with the appropriate data set descritpion. </p>
Plastic mulch film residues in agriculture: impact on soil suppressiveness, plant growth, and microbial communities
<p>Plastic mulch film residues have been accumulating in agricultural soils for decades, but so far, little is known about its consequences on soil microbial communities and functions. Here, we tested the effects of plastic residues of low-density polyethylene and biodegradable mulch films on soil suppressiveness and microbial community composition. We investigated how plastic residues in a Fusarium culmorum suppressive soil affect the level of disease suppressiveness, plant biomass, nutrient status, and microbial communities in rhizosphere using a controlled pot experiment. The addition of 1% plastic residues to the suppressive soil did not affect the level of suppression and the disease symptoms index. However, we did find that plant biomasses decreased, and that plant nutrient status changed in the presence of plastic residues. No significant changes in bacterial and fungal rhizosphere communities were observed. Nonetheless, bacterial and fungal communities closely attached to the plastisphere were very different from the rhizosphere communities with overrepresentation of potential plant pathogens. The plastisphere revealed a high abundance of specific bacterial phyla (Actinobacteria, Bacteroidetes, and Proteobacteria) and fungal genera (Rhizoctonia and Arthrobotrys). Our work revealed new insights and raises emerging questions for further studies on the impact of microplastics on the agroecosystems.</p>
Determination of sub-ps lattice dynamics in FeRh thin films
<p>Open Access Data for "Determination of sub-ps lattice dynamics in FeRh thin films" published in Scientific Reports <strong>12</strong>, 8584 (2022)</p> <p>https://doi.org/10.1038/s41598-022-12602-w</p> <p> </p> <p>Raw data from the XFEL experiment are accessible at https://doi.psi.ch/detail/10.16907%2F85ff2f32-f561-4413-a02a-74abc65cc82b</p>
Electronic Supplementary Information: Impact of a suspension drop onto a hot substrate: diminution of splash and prevention of film boiling
<p>This database includes Electronic Supplementary Information for <em>Soft Matter </em>manuscript: Impact of a suspension drop onto a hot substrate: diminution of splash and prevention of film boiling. </p> <p>The supplementary videos to Fig. 4: </p> <ul> <li>supplementary_video_fig_4_a-d.mp4</li> <li>supplementary_video_fig_4_e-h.mp4</li> <li>supplementary_video_fig_4_i-l.mp4</li> </ul> <p> </p> <p>and the supplementary videos to Fig. 12 (please do not regard to the file name)</p> <ul> <li>supplementary_video_fig_11_a-d.mp4</li> <li>supplementary_video_fig_11_e-h.mp4</li> <li>supplementary_video_fig_11_i-l.mp4</li> </ul>
Hong Kong Marketplace Film Documentary
<p>Hong Kong Marketplace Documentary https://www.youtube.com/watch?v=dIiwJX4tgmY</p> <p> </p> <p> </p>
Shadows and Gigabytes: A Taxonomy of Fan Edits of Hollywood Films
<p>The democratisation of filmmaking via digital media has been changing the nature of film adaptation, through the recent rise of fan edits of major studio films. With free access video sites like YouTube and Vimeo making anyone's professional level edits of studio film releases freely accessible by millions, the line defining the original director's intent becomes muddled. With a coming age of these fan edits being many people's introduction to classic film characters and series, there is a new level of discourse about the fidelity of the films as they had been originally released in theatres. Though many directors have released their own differing cuts of their same films, notably Ridley Scott, Oliver Stone and George Lucas, it is new territory to have critics' cuts, or as many different cuts of a film as fan communities desire to propagate. The film experience is now more malleable to suit the unique tastes of the audience participants as the fan edit grows steadily as its own genre.</p> <p>Whilst forging a method of approach to establishing an overview of this new fan cultural practice, I have developed a taxonomy by which these varied films can be aggregated, examining what is gained or lost for traditional film presentation. The traditional concept of the auteur theory is rendered obsolete in such context, and many iconic movie elements are being transformed for entirely new audiences; how does this rapidly growing trend affect the future of film spectatorship, and what does it reveal about the nature of adaptation, particularly when the original source stemmed from another medium, and how are the aspects of copyright affected? This Practice as Research thesis defines an organised taxonomy to contribute to an understanding of fan creativity, in light of how movie fan edits are shared and disseminated across fandom.</p>
Data for publication: Nanomechanical and Structural Study of Au38 Nanocluster Langmuir-Blodgett Films Using Bimodal Atomic Force Microscopy and X-Ray Reflectivity
<p>Original data of Figures published in:</p> <p><strong>Nanomechanical and Structural Study of Au<sub>38</sub> Nanocluster Langmuir-Blodgett Films Using Bimodal Atomic Force Microscopy and X-Ray Reflectivity</strong></p> <p>Journal of Colloid and Interface Science, 2022, Michal Swierczewski<sup>,</sup> Alexis Chenneviere, Lay-Theng Lee, Plinio Maroni and Thomas Bürgi*<sup>[</sup></p> <p> </p>
Mission Red Filmed Reconstructed Pot
Mission Red Flimed pot excavated and reconstructed by City of St. Augustine archaeologists. To learn more about the City of St. Augustine Archaeology Program, visit: https://www.citystaug.com/Archaeology This model was created using RealityCapture software by Capturing Reality. Model by Emma Dietrich Source: Objaverse 1.0 / Sketchfab
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